Theoretical investigation of quantum capacitance of Co-doped ?-MnO2 for supercapacitor applications using density functional theory

dc.contributor.authorVijayan, Ariya K.
dc.contributor.authorSreehari, M.S.
dc.contributor.authorKour, Simran
dc.contributor.authorDastider, Saptarshi Ghosh
dc.contributor.authorMondal, Krishnakanta
dc.contributor.authorSharma, A.L.
dc.date.accessioned2024-01-21T10:42:57Z
dc.date.accessioned2024-08-13T12:45:01Z
dc.date.available2024-01-21T10:42:57Z
dc.date.available2024-08-13T12:45:01Z
dc.date.issued2023-09-07T00:00:00
dc.description.abstractThe rapid depletion of fossil fuels and ever-growing energy demand have led to a search for renewable clean energy sources. The storage of renewable energy calls for immediate attention to the fabrication of efficient energy storage devices like supercapacitors (SCs). As an electrode material for SCs, MnO2 has gained wide research interest because of its high theoretical capacitance, variable oxidation state, vast abundance, and low cost. However, the low electric conductivity of MnO2 limits its practical application. The conductivity of MnO2 can be enhanced by tuning the electronic states through substitution doping with cobalt. In the present work, first principles analysis based on density functional theory (DFT) has been used to examine the quantum capacitance (CQC) and surface charge (Q) of Co-doped MnO2. Doping enhanced the structural stability, electrical conductivity, potential window, and quantum capacitance of ?-MnO2. The shortened band gap and localized states near the Fermi level improve the CQC of ?-MnO2. For the narrow potential range (?0.4 to 0.4 V), the CQC is observed to increase with doping concentration. The highest CQC value at +0.4 V is observed to be 2412.59 ?F cm?2 for Mn6Co2O16 (25% doping), five times higher than that of pristine MnO2 (471.18 ?F cm?2). Mn6Co2O16 also exhibits better CQC and �Q� at higher positive bias. Hence, it can be used as an anode material for asymmetric supercapacitors. All these results suggest better capacitive performance of Co-doped ?-MnO2 for aqueous SCs and as an anode material for asymmetric supercapacitors. � 2023 The Royal Society of Chemistry.en_US
dc.identifier.doi10.1039/d3cp03080f
dc.identifier.issn14639076
dc.identifier.urihttps://kr.cup.edu.in/handle/32116/3778
dc.identifier.urlhttp://xlink.rsc.org/?DOI=D3CP03080F
dc.language.isoen_USen_US
dc.publisherRoyal Society of Chemistryen_US
dc.subjectAnodesen_US
dc.subjectCapacitanceen_US
dc.subjectDensity functional theoryen_US
dc.subjectElectric conductivityen_US
dc.subjectEnergy gapen_US
dc.subjectFossil fuelsen_US
dc.subjectManganese oxideen_US
dc.subjectStabilityen_US
dc.subjectAnode materialen_US
dc.subjectAsymmetric supercapacitoren_US
dc.subjectClean energy sourcesen_US
dc.subjectCo-dopeden_US
dc.subjectDensity-functional-theoryen_US
dc.subjectEnergy demandsen_US
dc.subjectQuantum capacitanceen_US
dc.subjectRenewable energiesen_US
dc.subjectSupercapacitor applicationen_US
dc.subjectTheoretical investigationsen_US
dc.subjectSupercapacitoren_US
dc.titleTheoretical investigation of quantum capacitance of Co-doped ?-MnO2 for supercapacitor applications using density functional theoryen_US
dc.title.journalPhysical Chemistry Chemical Physicsen_US
dc.typeArticleen_US
dc.type.accesstypeClosed Accessen_US

Files